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Featured researches published by Samatha Bevara.


Inorganic Chemistry | 2017

Phase Transformation, Vibrational and Electronic Properties of K2Ce(PO4)2: A Combined Experimental and Theoretical Study

Samatha Bevara; K. K. Mishra; S.J. Patwe; T. R. Ravindran; M. K. Gupta; R. Mittal; P. Siva Ram Krishna; Anil K. Sinha; S. Nagabhusan Achary; A. K. Tyagi

Herein we report the high-temperature crystal chemistry of K2Ce(PO4)2 as observed from a joint in situ variable-temperature X-ray diffraction (XRD) and Raman spectroscopy as well as ab initio density functional theory (DFT) calculations. These studies revealed that the ambient-temperature monoclinic (P21/n) phase reversibly transforms to a tetragonal (I41/amd) structure at higher temperature. Also, from the experimental and theoretical calculations, a possible existence of an orthorhombic (Imma) structure with almost zero orthorhombicity is predicted which is closely related to tetragonal K2Ce(PO4)2. The high-temperature tetragonal phase reverts back to ambient monoclinic phase at much lower temperature in the cooling cycle compared to that observed at the heating cycle. XRD studies revealed the transition is accompanied by volume expansion of about 14.4%. The lower packing density of the high-temperature phase is reflected in its significantly lower thermal expansion coefficient (αV = 3.83 × 10-6 K-1) compared to that in ambient monoclinic phase (αV = 41.30 × 10-6 K-1). The coexistences of low- and high-temperature phases, large volume discontinuity in transition, and large hysteresis of transition temperature in heating and cooling cycles, as well as drastically different structural arrangement are in accordance with the first-order reconstructive nature of the transition. Temperature-dependent Raman spectra indicate significant changes around 783 K attributable to the phase transition. In situ low-temperature XRD, neutron diffraction, and Raman spectroscopic studies revealed no structural transition below ambient temperature. Raman mode frequencies, temperature coefficients, and reduced temperature coefficients for both monoclinic and tetragonal phases of K2Ce(PO4)2 have been obtained. Several lattice and external modes of rigid PO4 units are found to be strongly anharmonic. The observed phase transition and structures as well as vibrational properties of both ambient- and high-temperature phases were complimented by DFT calculations. The optical absorption studies on monoclinic phase indicated a band gap of about 2.46 eV. The electronic structure calculations on ambient-temperature monoclinic and high-temperature phases were also carried out.


Inorganic Chemistry | 2018

Pressure and Temperature Dependent Structural Studies on Hollandite Type Ferrotitanate and Crystal Structure of a High Pressure Phase

Samatha Bevara; S. Nagabhusan Achary; Nandini Garg; Abhishek Chitnis; P. U. Sastry; A. B. Shinde; P. Siva Ram Krishna; A. K. Tyagi

The structural stability and phase transition behavior of tetragonal (I4/m) hollandite type K2Fe2Ti6O16 have been investigated by in situ high pressure X-ray diffraction using synchrotron radiation and a diamond anvil cell as well as by variable temperature powder neutron and X-ray diffraction. The tetragonal phase is found to be stable in a wider range of temperatures, while it reversibly transforms to a monoclinic (I2/m) structure at a moderate pressure, viz. 3.6 GPa. The pressure induced phase transition occurs with only a marginal change in structural arrangements. The unit cell parameters of ambient (t) and high pressure (m) phases can be related as am ∼ at, bm ∼ ct, and cm ∼ bt. The pressure evolution of the unit cell parameters indicates anisotropic compression with βa = βb ≥ βc in the tetragonal phase and becomes more anisotropic with βa ≪ βb < βc in the monoclinic phase. The pressure-volume equations of state of both phases have been obtained by second order Birch-Murnaghan equations of state, and the bulk moduli are 122 and 127 GPa for tetragonal and monoclinic phases, respectively. The temperature dependent unit cell parameters show nearly isotropic expansion, with marginally higher expansion along the c-axis compared to the a- and b-axes. The tetragonal to monoclinic phase transition occurs with a reduction of unit cell volume of about 1.1% while the reduction of unit cell volume up to 6 K is only about 0.6%. The fitting of temperature dependent unit cell volume by using the Einstein model of phonons indicates the Einstein temperature is about 266(18) K.


DAE SOLID STATE PHYSICS SYMPOSIUM 2015 | 2016

Crystal structure and cation exchanging properties of a novel open framework phosphate of Ce (IV)

Samatha Bevara; S. N. Achary; S.J. Patwe; A. K. Sinha; Rosaline Mishra; Amar Kumar; C.P. Kaushik; A.K. Tyagi

Herein we report preparation, crystal structure and ion exchanging properties of a new phosphate of tetravalent cerium, K2Ce(PO4)2. A monoclinic structure having framework type arrangement of Ce(PO4)6 units formed by CeO8 square-antiprism and PO4 tetrahedra is assigned for K2Ce(PO4)2. The K+ ions are occupied in the channels formed by the Ce(PO4)6 and provide overall charge neutrality. The unique channel type arrangements of the K+ make them exchangeable with other cations. The ion exchanging properties of K2Ce(PO4)2 has been investigated by equilibrating with solution of 90Sr followed by radiometric analysis. In optimum conditions, significant exchange of K+ with Sr2+ with Kd ~ 8000 mL/g is observed. The details of crystal structure and ion exchange properties are explained and a plausible mechanism for ion exchange is presented.


Coordination Chemistry Reviews | 2017

Recent progress on synthesis and structural aspects of rare-earth phosphates

S. N. Achary; Samatha Bevara; A.K. Tyagi


Journal of the American Ceramic Society | 2016

Effect of Preparation Conditions on Magnetic and Dielectric Properties of Y2MMnO6 (M = Co, Ni)

Vasundhara Katari; Peram Delli Babu; Sanjaya K. Mishra; R. Mittal; Samatha Bevara; S. N. Achary; Sudhansu K. Deshpande; A. K. Tyagi


Dalton Transactions | 2016

Preparation and crystal structure of K2Ce(PO4)2: a new complex phosphate of Ce(IV) having structure with one-dimensional channels

Samatha Bevara; S. Nagabhusan Achary; Sadequa J. Patwe; Anil K. Sinha; A. K. Tyagi


Physical Chemistry Chemical Physics | 2017

Temperature dependent structural, vibrational and magnetic properties of K3Gd5(PO4)6

Samatha Bevara; S. Nagabhusan Achary; K. K. Mishra; T. R. Ravindran; Anil K. Sinha; P. U. Sastry; A. K. Tyagi


Journal of Alloys and Compounds | 2019

Thermodynamic investigations on K3Ln5(PO4)6 (Ln = Eu and Gd) compounds

Rimpi Dawar; Samatha Bevara; S. Nagabhusan Achary; Peram Delli Babu; Rosaline Mishra; A. K. Tyagi


Journal of environmental chemical engineering | 2018

Separation of 90 Sr from nuclear waste by crystalline complex phosphates of Ce(IV) and Zr(IV)

Samatha Bevara; Prema Giri; S.J. Patwe; S. Nagabhusan Achary; Raman K. Mishra; Amar Kumar; Anil K. Sinha; Chetan P. Kaushik; A. K. Tyagi


Journal of Solid State Chemistry | 2018

High pressure behavior of complex phosphate K 2 Ce[PO 4 ] 2 : Grüneisen parameter and anharmonicity properties

K. K. Mishra; Samatha Bevara; T. R. Ravindran; S.J. Patwe; M. K. Gupta; R. Mittal; R. Venkata Krishnan; S. N. Achary; A.K. Tyagi

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A. K. Tyagi

Bhabha Atomic Research Centre

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S. Nagabhusan Achary

Bhabha Atomic Research Centre

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Anil K. Sinha

Homi Bhabha National Institute

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S. N. Achary

Bhabha Atomic Research Centre

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S.J. Patwe

Bhabha Atomic Research Centre

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A.K. Tyagi

Bhabha Atomic Research Centre

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K. K. Mishra

Indira Gandhi Centre for Atomic Research

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R. Mittal

Bhabha Atomic Research Centre

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T. R. Ravindran

Indira Gandhi Centre for Atomic Research

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Amar Kumar

Bhabha Atomic Research Centre

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